NARA Discovery
Article Details
← Back to Search Results
Journal Article

A computational method for determining XBT depths

J. Stark; J. Gorman; M. Hennessey; F. Reseghetti; J. Willis; J. Lyman; J. Abraham; M. Borghini
Ocean Science · Vol. 7, Issue 6 · pp. 733-743 · 2011

Abstract

A new technique for determining the depth of expendable bathythermographs (XBTs) is developed. This new method uses a forward-stepping calculation which incorporates all of the forces on the XBT devices during their descent. Of particular note are drag forces which are calculated using a new drag coefficient expression. That expression, obtained entirely from computational fluid dynamic modeling, accounts for local variations in the ocean environment. Consequently, the method allows for accurate determination of depths for any local temperature environment. The results, which are entirely based on numerical simulation, are compared with the experiments of LM Sippican T-5 XBT probes. It is found that the calculated depths differ by less than 3% from depth estimates using the standard fall-rate equation (FRE). Furthermore, the differences decrease with depth. The computational model allows an investigation of the fluid flow patterns along the outer surface of the probe as well as in the interior channel. The simulations take account of complex flow phenomena such as laminar-turbulent transition and flow separation.

Bibliographic Information

JournalOcean Science
PublisherCopernicus Publications / European Geosciences Union
Publication Date2011-11-08
Publication Year2011
Volume7
Issue6
Pages733-743
Document TypeJournal Article
Print ISSN1812-0784
eISSN1812-0792
DOI10.5194/os-7-733-2011
SubjectOceanography; physical oceanography; chemical oceanography; biogeochemistry; ocean modelling

Access Information

NARA Access CoverageOA / free full text
Journal Homepagehttps://www.ocean-science.net/
Publisher PageOpen Publisher Page
This article is openly available from the publisher.